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A viscoelastic suspension culture strategy modulating fusion and development in blood vessel organoids

  • Zhaoyu Pan
  • , Yuke Xie
  • , Bowen Zhang
  • , Yingjie Liu
  • , Sen Wang
  • , Jianhua Peng
  • , Ling Wang
  • , Yong Jiang
  • , Dichen Li
  • Xi'an Jiaotong University
  • Xi'an Jiaotong University
  • Southwest Medical University

科研成果: 期刊稿件文章同行评审

1 引用 (Scopus)

摘要

Human blood vessel organoids (hBVOs) demonstrate significant potential in vascular drug development and tissue repair engineering. However, the traditional liquid culture method leads to spontaneous cell fusion and lacks a defined mechanical microenvironment to support cell growth during the initial suspension culture process for hBVOs, which limits their homogeneity under large-scale cultivation and the stability of their angiogenic properties. This study developed a novel viscoelastic culture medium with dual mechanical functions to replace the conventional liquid culture medium. By adding xanthan gum, we constructed a "rigid" barrier that could resist the transient stress generated under external disturbances, thereby inhibiting the contact and fusion of hBVOs. Concurrently, the system exhibits stress-relaxing "soft" properties in response to long-term stresses arising from hBVOs growth and expansion, providing appropriate mechanical cues while supporting cell growth. Our approach elevated hBVOs residual proportion from 31.35% to 84.23%, while significantly reducing size coefficient variation from 0.53 to 0.21. Furthermore, this viscoelastic medium can promote the densification and pre-vascularization of the internal tissues of hBVOs. Compared with traditional liquid culture hBVOs, after embedding them in type I collagen gel, they exhibit a stronger angiogenic ability, with the total length of blood vessels increasing by 124.1%. Transcriptomic analysis further confirms that this environment upregulates pathways related to mechanotransduction and angiogenesis. This study not only provides a novel strategy for the efficient, standardised preparation of hBVOs but also offers fresh perspectives for research into mechanically regulated vascular development within microenvironments.

源语言英语
页(从-至)198-214
页数17
期刊Bioactive Materials
65
DOI
出版状态已出版 - 11月 2026

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